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A Microfluidic 3D Endothelium-on-a-Chip Model to Study Transendothelial Migration of T Cells in Health and Disease

The recruitment of T cells is a crucial component in the inflammatory cascade of the body. The process involves the transport of T cells through the vascular system and their stable arrest to vessel walls at the site of inflammation, followed by extravasation and subsequent infiltration into tissue....

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Autores principales: de Haan, Luuk, Suijker, Johnny, van Roey, Ruthger, Berges, Nina, Petrova, Elissaveta, Queiroz, Karla, Strijker, Wouter, Olivier, Thomas, Poeschke, Oliver, Garg, Sakshi, van den Broek, Lenie J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8347346/
https://www.ncbi.nlm.nih.gov/pubmed/34361000
http://dx.doi.org/10.3390/ijms22158234
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author de Haan, Luuk
Suijker, Johnny
van Roey, Ruthger
Berges, Nina
Petrova, Elissaveta
Queiroz, Karla
Strijker, Wouter
Olivier, Thomas
Poeschke, Oliver
Garg, Sakshi
van den Broek, Lenie J.
author_facet de Haan, Luuk
Suijker, Johnny
van Roey, Ruthger
Berges, Nina
Petrova, Elissaveta
Queiroz, Karla
Strijker, Wouter
Olivier, Thomas
Poeschke, Oliver
Garg, Sakshi
van den Broek, Lenie J.
author_sort de Haan, Luuk
collection PubMed
description The recruitment of T cells is a crucial component in the inflammatory cascade of the body. The process involves the transport of T cells through the vascular system and their stable arrest to vessel walls at the site of inflammation, followed by extravasation and subsequent infiltration into tissue. Here, we describe an assay to study 3D T cell dynamics under flow in real time using a high-throughput, artificial membrane-free microfluidic platform that allows unimpeded extravasation of T cells. We show that primary human T cells adhere to endothelial vessel walls upon perfusion of microvessels and can be stimulated to undergo transendothelial migration (TEM) by TNFα-mediated vascular inflammation and the presence of CXCL12 gradients or ECM-embedded melanoma cells. Notably, migratory behavior was found to differ depending on T cell activation states. The assay is unique in its comprehensiveness for modelling T cell trafficking, arrest, extravasation and migration, all in one system, combined with its throughput, quality of imaging and ease of use. We envision routine use of this assay to study immunological processes and expect it to spur research in the fields of immunological disorders, immuno-oncology and the development of novel immunotherapeutics.
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spelling pubmed-83473462021-08-08 A Microfluidic 3D Endothelium-on-a-Chip Model to Study Transendothelial Migration of T Cells in Health and Disease de Haan, Luuk Suijker, Johnny van Roey, Ruthger Berges, Nina Petrova, Elissaveta Queiroz, Karla Strijker, Wouter Olivier, Thomas Poeschke, Oliver Garg, Sakshi van den Broek, Lenie J. Int J Mol Sci Article The recruitment of T cells is a crucial component in the inflammatory cascade of the body. The process involves the transport of T cells through the vascular system and their stable arrest to vessel walls at the site of inflammation, followed by extravasation and subsequent infiltration into tissue. Here, we describe an assay to study 3D T cell dynamics under flow in real time using a high-throughput, artificial membrane-free microfluidic platform that allows unimpeded extravasation of T cells. We show that primary human T cells adhere to endothelial vessel walls upon perfusion of microvessels and can be stimulated to undergo transendothelial migration (TEM) by TNFα-mediated vascular inflammation and the presence of CXCL12 gradients or ECM-embedded melanoma cells. Notably, migratory behavior was found to differ depending on T cell activation states. The assay is unique in its comprehensiveness for modelling T cell trafficking, arrest, extravasation and migration, all in one system, combined with its throughput, quality of imaging and ease of use. We envision routine use of this assay to study immunological processes and expect it to spur research in the fields of immunological disorders, immuno-oncology and the development of novel immunotherapeutics. MDPI 2021-07-30 /pmc/articles/PMC8347346/ /pubmed/34361000 http://dx.doi.org/10.3390/ijms22158234 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
de Haan, Luuk
Suijker, Johnny
van Roey, Ruthger
Berges, Nina
Petrova, Elissaveta
Queiroz, Karla
Strijker, Wouter
Olivier, Thomas
Poeschke, Oliver
Garg, Sakshi
van den Broek, Lenie J.
A Microfluidic 3D Endothelium-on-a-Chip Model to Study Transendothelial Migration of T Cells in Health and Disease
title A Microfluidic 3D Endothelium-on-a-Chip Model to Study Transendothelial Migration of T Cells in Health and Disease
title_full A Microfluidic 3D Endothelium-on-a-Chip Model to Study Transendothelial Migration of T Cells in Health and Disease
title_fullStr A Microfluidic 3D Endothelium-on-a-Chip Model to Study Transendothelial Migration of T Cells in Health and Disease
title_full_unstemmed A Microfluidic 3D Endothelium-on-a-Chip Model to Study Transendothelial Migration of T Cells in Health and Disease
title_short A Microfluidic 3D Endothelium-on-a-Chip Model to Study Transendothelial Migration of T Cells in Health and Disease
title_sort microfluidic 3d endothelium-on-a-chip model to study transendothelial migration of t cells in health and disease
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8347346/
https://www.ncbi.nlm.nih.gov/pubmed/34361000
http://dx.doi.org/10.3390/ijms22158234
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